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Rational Design of Small-Molecule Inhibitors of Protein-Protein Interactions: Application to the Oncogenic c-Myc/Max Interaction

机译:蛋白质-蛋白质相互作用的小分子抑制剂的合理设计:在致癌性c-Myc / Max相互作用中的应用

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摘要

Protein-protein interactions (PPIs) constitute an emerging class of targets for pharmaceutical intervention pursued by both industry and academia. Despite their fundamental role in many biological processes and diseases such as cancer, PPIs are still largely underrepresented in today's drug discovery. This dissertation describes novel computational approaches developed to facilitate the discovery/design of small-molecule inhibitors of PPIs, using the oncogenic c-Myc/Max interaction as a case study.First, we critically review current approaches and limitations to the discovery of small-molecule inhibitors of PPIs and we provide examples from the literature.Second, we examine the role of protein flexibility in molecular recognition and binding, and we review recent advances in the application of Elastic Network Models (ENMs) to modeling the global conformational changes of proteins observed upon ligand binding. The agreement between predicted soft modes of motions and structural changes experimentally observed upon ligand binding supports the view that ligand binding is facilitated, if not enabled, by the intrinsic (pre-existing) motions thermally accessible to the protein in the unliganded form.Third, we develop a new method for generating models of the bioactive conformations of molecules in the absence of protein structure, by identifying a set of conformations (from different molecules) that are most mutually similar in terms of both their shape and chemical features. We show how to solve the problem using an Integer Linear Programming formulation of the maximum-edge weight clique problem. In addition, we present the application of the method to known c-Myc/Max inhibitors.Fourth, we propose an innovative methodology for molecular mimicry design. We show how the structure of the c-Myc/Max complex was exploited to designing compounds that mimic the binding interactions that Max makes with the leucine zipper domain of c-Myc.In summary, the approaches described in this dissertation constitute important contributions to the fields of computational biology and computer-aided drug discovery, which combine biophysical insights and computational methods to expedite the discovery of novel inhibitors of PPIs.
机译:蛋白质-蛋白质相互作用(PPI)构成了工业界和学术界追求的药物干预的新兴目标类别。尽管PPI在许多生物过程和疾病(例如癌症)中起着基本作用,但在当今的药物研发中,PPI仍然远远不足。本文以致癌性c-Myc / Max相互作用为案例研究,描述了为促进PPI小分子抑制剂的发现/设计而开发的新颖计算方法。首先,我们严格审查了目前发现小分子PPI的方法和局限性。 PPI的分子抑制剂,我们提供了一些文献实例。其次,我们研究了蛋白质柔韧性在分子识别和结合中的作用,并回顾了弹性网络模型(ENM)在建模蛋白质整体构象变化中的最新进展。观察到配体结合。配体结合后在实验上观察到的预测的柔和运动模式与结构变化之间的一致性支持了这样一种观点,即配体结合是通过未配体形式的蛋白质热可及的内在(预先存在的)运动来促进的。我们通过识别一组在形状和化学特征上最相似的构象(来自不同分子),开发了一种在不存在蛋白质结构的情况下生成分子生物活性构象模型的新方法。我们展示了如何使用最大边缘重量团问题的整数线性规划公式来解决该问题。此外,我们介绍了该方法在已知c-Myc / Max抑制剂中的应用。第四,我们提出了一种用于分子模拟设计的创新方法。我们展示了如何利用c-Myc / Max复合物的结构来设计模拟Max与c-Myc的亮氨酸拉链结构域的结合相互作用的化合物。总之,本论文中描述的方法对计算生物学和计算机辅助药物发现领域,它们结合了生物物理学的见识和计算方法来加快新型PPI抑制剂的发现。

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